A camel milk concentration device preventing upper layer caking
By designing a camel milk concentration device that prevents clumping on the upper layer, and employing turbulent agitation, friction cleaning, and drying processes, the problems of material clumping and contamination in the camel milk concentration device have been solved, resulting in cleaner equipment and improved production efficiency.
Patent Information
- Application Number
- CN202510479170.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-16
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2045-04-16
AI Technical Summary
Existing camel milk concentration equipment is prone to causing substances or gases to adhere to the top of the equipment during operation, resulting in clumping and contamination, affecting material quality and making equipment cleaning more difficult.
A camel milk concentration device for preventing caking on the upper layer was designed. It adopts a combination of tank structure, wall scraping mechanism, friction mechanism and drying mechanism. Through turbulent agitation, friction cleaning and drying treatment, the material is prevented from caking on the inner wall of the equipment and the equipment is kept clean.
It effectively prevents camel milk from clumping on the inner wall of the equipment, maintains material quality, reduces cleaning difficulty, extends equipment life, and improves production efficiency and safety.
Smart Images

Figure CN119999767B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dairy technology, specifically to a camel milk concentration device that prevents clumping on the top layer. Background Technology
[0002] Camel milk is the milk produced by the Bactrian camel, a camel species. It is rich in vitamin C and also contains a large amount of unsaturated fatty acids, iron, and vitamin B, all essential for the human body. It is warm in nature, sweet and cold in taste, and non-toxic. It is believed to invigorate the spleen and stomach, strengthen muscles and bones, and can be consumed internally as a hot beverage.
[0003] Existing camel milk concentration equipment is prone to having substances or gases adhere to the top of the equipment during operation, which can affect the material. Therefore, a new design has been developed to address this issue. Summary of the Invention
[0004] To achieve the above objectives, the present invention provides the following technical solution: a camel milk concentration device for preventing caking on the upper layer, comprising a tank structure, a first motor fixedly connected to the top of the tank structure, a central rotating shaft rotatably connected to the top of the inner wall of the tank structure, an anti-caking mechanism fixedly connected to the side of the central rotating shaft near the first motor, a wall scraping mechanism fixedly connected to the side of the central rotating shaft away from the anti-caking mechanism, a support frame fixedly connected to the bottom of the tank structure, a second motor fixedly connected to the middle of the bottom of the tank structure, a drying mechanism fixedly connected to the upper side of the tank structure, and an air pipe fixedly connected to one side of the tank structure.
[0005] The tank structure includes a tank shell. An input mechanism is fixedly connected to the upper side of the tank shell. Material enters the interior of the tank shell from one side of the input mechanism. The input mechanism increases liquid turbulence, reducing impurities from settling on the inner wall of the pipe and preventing blockages. A heater is fixedly connected to the lower side of the tank shell, heating the interior of the tank shell to reduce the moisture content of the camel milk and inhibit the growth and reproduction of microorganisms. A connecting shaft is rotatably connected to the bottom of the inner wall of the tank shell. A second motor drives the connecting shaft to rotate, causing a paddle to stir the camel milk. Stirring increases material flow, helping to ensure even heating of the camel milk and preventing localized heating. Overheating can cause a decline in camel milk quality, but it can also accelerate the concentration process and improve production efficiency. A connecting end is fixedly connected to the outside of the connecting shaft, and a rotating paddle is rotatably connected to the outside of the connecting end. The rotating paddle rotates inside the connecting end due to changes in liquid pressure, thereby increasing the stirring range of the material and improving the stirring effect. This makes the material heated more evenly, avoiding uneven heating and preventing the destruction of nutrients in the camel milk due to local overheating. It also promotes water evaporation. By continuously heating the camel milk, the water inside the material is evaporated. A discharge valve is fixedly connected to the bottom of the tank shell near the second motor. Gas is discharged outward from the gas pipe to facilitate subsequent processing. Finally, the concentrated camel milk is discharged outward from the discharge valve.
[0006] Preferably, connecting frames are fixedly connected to both sides of the connecting shaft. During the rotation of the connecting shaft, the connecting frames drive the curved blocks to rotate. During the rotation of the curved blocks, they rub against the inner wall of the tank shell, reducing material coagulation on the inner wall of the tank, avoiding resource waste, and preventing camel milk from sticking and increasing the difficulty of subsequent cleaning. At the same time, it avoids inadequate cleaning from contaminating subsequent materials and causing safety hazards. When camel milk coagulates and sticks, it can easily form a heat insulation layer on the inner wall of the equipment, increasing thermal resistance, which will hinder heat transfer, reduce heating efficiency, prolong production time, and increase energy consumption. A curved block is fixedly connected to the side of the connecting frame away from the connecting shaft. The curved block adopts an inclined structure with grooves, which can guide the flow of materials during the friction process and reduce the material from sticking to the surface of the parts.
[0007] Preferably, the input mechanism includes a pipe shell with a sliding groove on its inner side. A ring-shaped frame is slidably connected to the inner side of the sliding groove, allowing for easy disassembly and subsequent cleaning. A spiral plate is fixedly connected between the opposite faces of the ring-shaped frame. The material moves from one side of the pipe shell to the inside of the tank shell, contacting the spiral plate during flow. The spiral structure increases the turbulence of the liquid, promoting mixing of substances within the material and reducing sedimentation on the inner wall of the pipe during flow. This reduces the sedimentation of impurities within the material. The turbulent flow enhances the scouring effect of the liquid on the pipe wall, reducing the adhesion and deposition of impurities and proteins from camel milk on the inner wall of the pipe. This helps maintain pipe cleanliness, reduces the risk of pipe blockage, and also reduces microbial growth caused by dirt accumulation, extending the cleaning cycle and service life of the equipment.
[0008] Preferably, the anti-caking mechanism includes an annular block, a curved frame fixedly connected to the outer side of the annular block, a connecting block fixedly connected to the outer side of the curved frame, a friction plate fixedly connected to one side of the connecting block, and a friction mechanism fixedly connected to the curved side of the outer side of the curved frame. The central shaft is rotated by a first motor, causing the central shaft to drive the curved frame to rotate, resulting in the friction plate rubbing against the top of the inner wall of the tank shell. This prevents caking on the top of the inner wall, which can easily lead to impurities adsorbing onto the inner wall and contaminating the equipment and materials. On the one hand, rotation reduces material adsorption during operation, reducing equipment contamination; on the other hand, after operation, friction cleans the top of the inner wall.
[0009] Preferably, the friction mechanism includes a cylindrical shell with a spring strip on its inner side. A friction rod is slidably connected to the inner wall of the cylindrical shell, and the friction rod compresses the spring strip to achieve shock absorption and buffering, reducing component amplitude and impact force. A curved friction block is fixedly connected to the outer side of the friction rod away from the cylindrical shell. As the central shaft rotates, the friction rod slides inside the cylindrical shell, causing the curved friction block to rub against the curved part at the top of the tank shell, thereby cleaning impurities, reducing equipment dead corners, and preventing bacterial growth. The curved friction block generates a reaction force through collision with the inner wall of the equipment. A surface cut is opened on one side of the curved friction block. By opening the surface cut and groove, the surface texture of the component is increased, thereby improving the friction performance of the component and further improving the cleaning effect.
[0010] Preferably, the scraping mechanism includes a connecting column, a square shell fixedly connected to the outer side of the connecting column, a square block slidably connected to the inner side of the square shell, and a first spring sleeved on the outer side of the square block. The elastic structure of the first spring causes the square block to move inward toward the inner side of the square shell, thus restoring the device to its original state. A wiping mechanism is fixedly connected to the outer side of the square block away from the connecting column. During the rotation of the central shaft, the scraping mechanism is driven to rotate, and the connecting column drives the wiping mechanism to rotate. The centrifugal force generated by the rotation causes the square block to slide inside the square shell, causing the wiping mechanism to rub against the inner wall of the device, thereby achieving the effect of scraping camel milk. This reduces the amount of camel milk that flows onto the inner wall of the device during the process of conveying it into the device, and scrapes off the camel milk adhering to the barrel wall in time, preventing the camel milk from drying and clumping on the barrel wall, ensuring that the barrel wall is always clean, and that the camel milk can be evenly heated and flowed. After the conveying is completed, the inner wall of the device can be cleaned by friction to remove residual camel milk and impurities.
[0011] Preferably, the wiping mechanism includes an elliptical frame. A receiving housing is fixedly connected to the inner wall of the elliptical frame near the square block. A second spring is provided on the inner side of the receiving housing. A sliding block is slidably connected to the inner wall of the receiving housing. When the wiping mechanism is pressed against the inner wall of the equipment due to centrifugal force, the second spring is compressed by the sliding block sliding on the inner side of the receiving housing, thereby achieving shock absorption and buffering, reducing the collision pressure of the components, avoiding excessive wear of the equipment, and thus extending the service life of the components. A silicone block is fixedly connected to the outer side of the elliptical frame away from the square block. The silicone block is made of silicone material to increase the wear resistance and buffering effect of the components, providing a certain degree of protection for the components and reducing wear. A square cut is provided on the outer side of the silicone block. By opening the square cut and slotting, the deformation performance of the components is increased, thereby further improving the buffering effect of the components.
[0012] Preferably, the drying mechanism includes a housing, with a dryer fixedly connected to the top of the housing. After cleaning the inside of the tank mechanism, the dryer generates a hot airflow, which passes through the housing and delivers gas into the tank shell, thereby drying the inside of the equipment. This reduces moisture inside the equipment, prevents water from remaining inside, and prevents the growth of microorganisms inside the equipment. If the residual liquid is acidic or alkaline, it may corrode the inner wall of the equipment. Long-term contact with corrosive liquid will gradually erode the metal material of the inner wall of the equipment, resulting in thinner walls, reduced strength, and shortened service life. An output pipe is fixedly connected to the bottom of the housing, and a ring-shaped shell is fixedly connected to the outer side of the output pipe away from the housing. A cleaning mechanism is fixedly connected to the inner wall of the ring-shaped shell, and a baffle is fixedly connected to the inner wall of the ring-shaped shell near the tank shell. The baffle reduces the amount of liquid entering the equipment.
[0013] Preferably, the cleaning mechanism includes a fixed frame, a connecting rod fixedly connected to one side of the fixed frame, a rotating block rotatably connected to the outer side of the connecting rod, a cleaning frame body fixedly connected to the outer side of the rotating block, blades fixedly connected to the inner side of the cleaning frame body, a receiving frame body fixedly connected to the outer side of the cleaning frame body away from the rotating block, and a friction column rotatably connected to the outer side of the receiving frame body. During cleaning of the tank interior, airflow impacts the blades, causing the blades to rotate the cleaning frame body, which in turn causes the friction column to rub against the inner wall of the pipe, thereby cleaning impurities from the inner wall, reducing impurity deposition on the inner wall of the pipe, and preventing obstruction of subsequent airflow after prolonged operation.
[0014] This invention provides a camel milk concentration device that prevents clumping on the upper layer. It has the following beneficial effects:
[0015] I. This camel milk concentration equipment, designed to prevent caking, utilizes a tank structure where material enters the tank shell from one side of the inlet mechanism. This inlet mechanism increases liquid turbulence, reducing impurities from settling on the pipe walls and preventing blockages. A heater heats the inside of the tank shell, reducing the camel milk's moisture content and inhibiting microbial growth. A second motor drives a connecting shaft to rotate, causing a paddle to agitate the milk. This agitation increases material flow and helps to homogenize the camel milk. Even heating prevents localized overheating that could degrade camel milk quality, while also accelerating concentration and improving production efficiency. Changes in liquid pressure cause the paddle to rotate inside the connection, increasing the mixing range and improving the mixing effect. This ensures more uniform heating, preventing uneven heating and the destruction of nutrients in the camel milk due to localized overheating. It also promotes water evaporation; by continuously heating the camel milk, internal moisture is evaporated, and gas is released from the gas pipe for subsequent processing. Finally, the concentrated camel milk is discharged from the outlet valve.
[0016] Second, this camel milk concentration equipment with anti-caking mechanism features an input mechanism that allows material to move from one side of the pipe shell to the inside of the tank shell. During the flow, the material comes into contact with the spiral plate, and the spiral structure increases the turbulence of the liquid, thereby promoting the mixing of substances inside the material and reducing sedimentation on the inner wall of the pipe during the flow. This reduces the amount of impurities inside the material. The turbulent flow also enhances the scouring effect of the liquid on the pipe wall, reducing the adhesion and deposition of impurities and proteins in the camel milk on the inner wall of the pipe. This helps to keep the pipe clean, reduces the risk of pipe blockage, and also reduces the growth of microorganisms caused by dirt accumulation, extending the cleaning cycle and service life of the equipment. Furthermore, the ring-shaped frame slides inside the sliding groove, making it easy to disassemble and clean the components.
[0017] Third, this camel milk concentration equipment for preventing upper layer clumping utilizes a friction mechanism design. As the central shaft rotates, the friction support rod slides inside the cylindrical shell, causing the curved friction block to rub against the curved part at the top of the tank shell. This effectively cleans impurities, reduces dead corners in the equipment, and prevents bacterial growth. The collision between the curved friction block and the inner wall of the equipment generates a reaction force, and the friction support rod squeezes the spring strip, thus achieving a shock absorption and buffering effect, reducing component amplitude and impact force. Furthermore, by opening cuts and grooves on the block surface to increase the surface texture of the components, the friction performance of the components is improved, further enhancing the cleaning effect.
[0018] IV. This camel milk concentration equipment, designed to prevent clumping on the upper layer, utilizes a scraping mechanism. The central rotating shaft drives the scraping mechanism to rotate, and the connecting column drives the wiping mechanism to rotate. The centrifugal force generated by the rotation causes the square block to slide inside the square shell, rubbing against the inner wall of the equipment. This scrapes away the camel milk, reducing its flow onto the inner wall during transport. The equipment promptly scrapes off any camel milk adhering to the barrel wall, preventing it from drying and clumping, ensuring the barrel wall remains clean. This allows the camel milk to be heated and flow evenly. After transport, the inner wall is cleaned by friction to remove residual camel milk and impurities. Centrifugation ends when rotation stops, and the elastic structure of the first spring moves the square block towards the inside of the square shell, restoring the equipment to its original state.
[0019] 5. This camel milk concentration equipment for preventing upper layer clumping utilizes a wiping mechanism design. When the wiping mechanism adheres to the inner wall of the equipment due to centrifugal force, a sliding block slides inside the receiving shell to compress the second spring, thereby achieving a shock absorption and buffering effect. This reduces the impact pressure on components, prevents excessive wear of the equipment, and extends the service life of the components. The silicone block is made of silicone material to increase the wear resistance and buffering effect of the components, providing a certain degree of protection and reducing wear. Furthermore, by opening square cuts and slots, the deformation performance of the components is increased, further enhancing the buffering effect. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the external structure of the camel milk concentration device for preventing upper layer clumping according to the present invention.
[0021] Figure 2 This is a schematic cross-sectional view of the camel milk concentration equipment of the present invention;
[0022] Figure 3 This is a schematic cross-sectional view of the tank body structure of the present invention;
[0023] Figure 4 This is a schematic cross-sectional view of the input mechanism of the present invention;
[0024] Figure 5 This is a schematic diagram of the anti-caking mechanism of the present invention;
[0025] Figure 6 This is a schematic diagram of the friction mechanism structure of the present invention;
[0026] Figure 7 This is a schematic diagram of the wall scraping mechanism of the present invention;
[0027] Figure 8 This is a schematic diagram of the wiping mechanism of the present invention;
[0028] Figure 9 This is a schematic diagram of the drying mechanism of the present invention;
[0029] Figure 10 This is a schematic diagram of the cleaning mechanism structure of the present invention.
[0030] In the diagram: 1. Tank body mechanism; 2. Anti-caking mechanism; 3. Wall scraping mechanism; 4. Drying mechanism; 5. First motor; 6. Second motor; 7. Support frame; 8. Air pipe; 9. Central rotating shaft; 11. Tank shell; 12. Connecting shaft; 13. Connecting end; 14. Rotating paddle; 15. Heater; 16. Connecting frame; 17. Curved block; 18. Discharge valve; 19. Input mechanism; 191. Pipe shell; 192. Sliding groove; 193. Ring-shaped frame; 194. Spiral plate; 21. Curved frame; 22. Connecting block; 23. Friction plate; 24. Annular block; 25. Friction mechanism; 251. Cylindrical shell; 252. Spring bar; 2 53. Friction support rod; 254. Curved friction block; 255. Block face notch; 31. Connecting column; 32. Square shell; 33. Square block; 34. First spring; 35. Wiping mechanism; 351. Elliptical frame; 352. Receiving shell; 353. Second spring; 354. Sliding block; 355. Silicone block; 356. Square notch; 41. Box body; 42. Dryer; 43. Output pipe; 44. Ring-shaped shell; 45. Baffle plate; 46. Cleaning mechanism; 461. Fixing frame; 462. Connecting rod; 463. Rotating block; 464. Cleaning frame; 465. Blade; 466. Receiving frame; 467. Friction column. Detailed Implementation
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0032] First embodiment, such as Figures 1 to 6As shown, the present invention provides a technical solution: a camel milk concentration device for preventing upper layer caking, including a tank body 1, a first motor 5 fixedly connected to the top of the tank body 1, a central rotating shaft 9 rotatably connected to the top of the inner wall of the tank body 1, an anti-caking mechanism 2 fixedly connected to the side of the central rotating shaft 9 near the first motor 5, a wall scraping mechanism 3 fixedly connected to the side of the central rotating shaft 9 away from the anti-caking mechanism 2, a support frame 7 fixedly connected to the bottom side of the tank body 1, a second motor 6 fixedly connected to the middle of the bottom of the tank body 1, a drying mechanism 4 fixedly connected to the upper side of the tank body 1, and an air pipe 8 fixedly connected to one side of the tank body 1.
[0033] The tank structure 1 includes a tank shell 11. An input mechanism 19 is fixedly connected to the upper side of the tank shell 11, and a heater 15 is fixedly connected to the lower side of the tank shell 11. A connecting shaft 12 is rotatably connected to the bottom of the inner wall of the tank shell 11. A connecting end 13 is fixedly connected to the outer side of the connecting shaft 12, and a rotating paddle 14 is rotatably connected to the outer side of the connecting end 13. A discharge valve 18 is fixedly connected to the bottom of the tank shell 11 near the second motor 6. Material enters the tank shell 11 from one side of the input mechanism 19. The input mechanism 19 increases liquid turbulence, reducing impurities from settling on the inner wall of the pipe and preventing blockage. The heater 15 heats the inside of the tank shell 11, thereby heating the camel milk and reducing its moisture content. This reduces the water content and inhibits the growth and reproduction of microorganisms. The second motor 6 drives the connecting shaft 12 to rotate, causing the rotating paddle 14 to stir the camel milk. Stirring increases material flow, helping to ensure even heating of the camel milk and preventing localized heating. Overheating leads to a decline in camel milk quality, but it also accelerates the concentration process and improves production efficiency. Changes in liquid pressure cause the rotating paddle 14 to rotate inside the connecting end 13, thereby increasing the stirring range of the material and improving the stirring effect. This makes the material heated more evenly, avoiding uneven heating and preventing the destruction of nutrients in the camel milk due to local overheating. It also promotes water evaporation. By continuously heating the camel milk, the water inside the material is evaporated, and the gas is discharged outward from the gas pipe 8 to facilitate subsequent processing. Finally, the concentrated camel milk is discharged outward from the discharge valve 18.
[0034] Connecting brackets 16 are fixedly connected to both sides of the connecting shaft 12. A curved block 17 is fixedly connected to the side of the connecting bracket 16 away from the connecting shaft 12. During the rotation of the connecting shaft 12, the connecting brackets 16 drive the curved block 17 to rotate. During the rotation of the curved block 17, it rubs against the inner wall of the tank shell 11, reducing material coagulation on the inner wall of the tank, avoiding resource waste, and preventing camel milk from sticking and increasing the difficulty of subsequent cleaning. It also prevents inadequate cleaning from contaminating subsequent materials and causing safety hazards. When camel milk coagulates and sticks, it can easily form a heat insulation layer on the inner wall of the equipment, increasing thermal resistance, hindering heat transfer, reducing heating efficiency, prolonging production time, and increasing energy consumption. The curved block 17 adopts an inclined groove structure, so it can guide the flow of material during the friction process and reduce material adhesion to the surface of the component.
[0035] The input mechanism 19 includes a pipe housing 191. A sliding groove 192 is formed on the inner side of the pipe housing 191. A ring-shaped frame 193 is slidably connected to the inner side of the sliding groove 192. A spiral plate 194 is fixedly connected between the opposite faces of the ring-shaped frame 193. Material moves from one side of the pipe housing 191 towards the inner side of the tank housing 11, contacting the spiral plate 194 during flow. The spiral structure increases the turbulence of the liquid, promoting mixing of substances within the material and reducing sedimentation on the inner wall of the pipe during flow. This reduces the sedimentation of impurities within the material. The turbulent flow enhances the scouring effect on the pipe wall, reducing the adhesion and deposition of impurities and proteins from camel milk on the inner wall of the pipe, helping to maintain pipe cleanliness, reducing the risk of pipe blockage, and reducing microbial growth caused by dirt accumulation, thus extending the cleaning cycle and service life of the equipment. Furthermore, the ring-shaped frame 193 slides within the sliding groove 192, facilitating disassembly and subsequent cleaning of components.
[0036] The anti-caking mechanism 2 includes an annular block 24, with a curved frame 21 fixedly connected to the outer side of the annular block 24. A connecting block 22 is fixedly connected to the outer side of the curved frame 21, and a friction plate 23 is fixedly connected to one side of the connecting block 22. A friction mechanism 25 is fixedly connected to the curved side of the curved frame 21. The central rotating shaft 9 is controlled by the first motor 5 to rotate, causing the central rotating shaft 9 to drive the curved frame 21 to rotate. This causes the friction plate 23 to rub against the top of the inner wall of the tank shell 11, preventing caking on the top of the inner wall of the equipment. Caking can easily lead to impurities adsorbing onto the inner wall of the equipment, which can easily cause contamination of the equipment and materials. On the one hand, the rotation reduces material adsorption during operation, reducing contamination of the equipment. On the other hand, after the operation is completed, the friction cleans the top of the inner wall of the equipment.
[0037] The friction mechanism 25 includes a cylindrical housing 251, with a spring strip 252 disposed on the inner side of the cylindrical housing 251. A friction support rod 253 is slidably connected to the inner wall of the cylindrical housing 251, and a curved friction block 254 is fixedly connected to the outer side of the friction support rod 253 away from the cylindrical housing 251. A cutout 255 is provided on the outer side of the curved friction block 254. As the central shaft 9 rotates, the friction support rod 253 slides inside the cylindrical housing 251, causing the curved friction block 254 to rub against the curved part at the top of the tank shell 11, thereby cleaning impurities, reducing dead corners of the equipment, and preventing bacterial growth. The friction block 254 collides with the inner wall of the equipment, generating a reaction force, and the friction support rod 253 squeezes the spring strip 252, thereby achieving a shock absorption and buffering effect, reducing component amplitude, and reducing impact force. Furthermore, by opening the cutout 255 and creating grooves to increase the surface texture of the component, the friction performance of the component is improved, further enhancing the cleaning effect.
[0038] The second embodiment is based on the first embodiment; please refer to [link / reference]. Figures 7 to 8 As shown, the wall scraping mechanism 3 includes a connecting column 31, a square housing 32 is fixedly connected to the outside of the connecting column 31, a square block 33 is slidably connected to the inside of the square housing 32, a first spring 34 is sleeved on the outside of the square block 33, and a wiping mechanism 35 is fixedly connected to the side of the square block 33 away from the connecting column 31. During the rotation of the central shaft 9, the scraping mechanism 3 rotates, and the connecting column 31 drives the wiping mechanism 35 to rotate. The centrifugal force generated by the rotation causes the square block 33 to slide inside the square shell 32, so that the wiping mechanism 35 rubs against the inner wall of the equipment, thereby scraping the camel milk and reducing the amount of camel milk that flows onto the inner wall of the equipment during the process of being transported into the equipment. The camel milk adhering to the barrel wall is scraped off in time to prevent the camel milk from drying and clumping on the barrel wall, so as to ensure that the barrel wall is always clean and the camel milk can be heated and flow evenly. After the transportation is completed, the inner wall of the equipment can be cleaned by friction to remove residual camel milk and impurities. After the rotation stops, the centrifugation ends, and the elastic structure of the first spring 34 causes the square block 33 to move to the inside of the square shell 32, so that the equipment returns to its original state.
[0039] The wiping mechanism 35 includes an elliptical frame 351. A receiving housing 352 is fixedly connected to the inner wall of the elliptical frame 351 near the square block 33. A second spring 353 is provided on the inner side of the receiving housing 352. A sliding block 354 is slidably connected to the inner wall of the receiving housing 352. A silicone block 355 is fixedly connected to the outer side of the elliptical frame 351 away from the square block 33. A square cutout 356 is provided on the outer side of the silicone block 355. When the wiping mechanism 35 is adhered to the inner wall of the equipment due to centrifugal force, the second spring 353 is compressed by the sliding block 354 sliding inside the receiving housing 352, thereby achieving shock absorption and buffering, reducing the collision pressure of the parts, avoiding excessive wear of the equipment, and thus extending the service life of the parts. The silicone block 355 is made of silicone material to increase the wear resistance and buffering effect of the parts, providing a certain degree of protection for the parts and reducing wear. Furthermore, by opening the square cutout 356, the deformation performance of the parts is increased through slotting, thereby further improving the buffering effect of the parts.
[0040] The third embodiment is based on embodiments one and two; please refer to [link / reference]. Figures 9 to 10 As shown, the drying mechanism 4 includes a housing 41. A dryer 42 is fixedly connected to the top of the housing 41, and an output pipe 43 is fixedly connected to the bottom of the housing 41. A ring-shaped shell 44 is fixedly connected to the outer side of the output pipe 43 away from the housing 41. A cleaning mechanism 46 is fixedly connected to the inner wall of the ring-shaped shell 44, and a baffle plate 45 is fixedly connected to the inner wall of the ring-shaped shell 44 near the outer shell 11 of the tank. After cleaning the inside of the tank mechanism 1, a hot airflow is generated by the dryer 42 and transported through the housing 41 to the inside of the outer shell 11 of the tank, thereby drying the inside of the equipment, reducing moisture inside the equipment, preventing water from remaining inside the equipment, and preventing the growth of microorganisms inside the equipment. If the residual liquid is acidic or alkaline, it may corrode the inner wall of the equipment. Long-term contact with corrosive liquid will gradually erode the metal material of the inner wall of the equipment, resulting in thinner wall thickness, reduced strength, and shortened service life of the equipment. The baffle plate 45 serves to reduce the entry of liquid.
[0041] The cleaning mechanism 46 includes a fixed frame 461. A connecting rod 462 is fixedly connected to one side of the fixed frame 461. A rotating block 463 is rotatably connected to the outer side of the connecting rod 462. A cleaning frame 464 is fixedly connected to the outer side of the rotating block 463. A blade 465 is fixedly connected to the inner side of the cleaning frame 464. A receiving frame 466 is fixedly connected to the outer side of the cleaning frame 464 away from the rotating block 463. A friction column 467 is rotatably connected to the outer side of the receiving frame 466. During the cleaning of the inside of the tank, the airflow impacts the blade 465, causing the blade 465 to rotate the cleaning frame 464. This causes the friction column 467 to rub against the inner wall of the pipe, thereby cleaning impurities from the inner wall, reducing the amount of impurities deposited on the inner wall of the pipe, and preventing the flow of subsequent airflow from being affected after prolonged operation.
[0042] During operation, camel milk flows from one side of the input mechanism 19 into the tank shell 11. The input mechanism 19 promotes mixing of the materials, reducing sedimentation on the inner wall of the pipe during flow and minimizing impurities. The turbulent flow enhances the scouring effect on the pipe wall, further reducing the adhesion and deposition of impurities and proteins from the camel milk on the inner wall, helping to maintain pipe cleanliness, reducing the risk of blockage, and minimizing microbial growth due to dirt accumulation, thus extending the cleaning cycle and service life of the equipment. After the material enters the tank shell 11, the second motor 6 drives the connecting shaft 12 to rotate, increasing material flow through stirring. This process helps ensure even heating of camel milk, preventing localized overheating that could degrade its quality. It also accelerates concentration and improves production efficiency. The heater 15 heats the inside of the tank shell 11, thereby heating the camel milk, reducing its internal moisture content, and inhibiting the growth and reproduction of microorganisms. During the stirring process, uneven heating is prevented, avoiding the destruction of nutrients in the camel milk due to localized overheating, thus achieving the effect of material concentration. The airflow during the heating process flows towards the air pipe 8 side to facilitate subsequent processing. After the operation is completed, the material is discharged from the discharge valve 18 for further processing.
[0043] After the operation is completed, the inside of the equipment needs to be cleaned. The central shaft 9 is rotated by the first motor 5, which in turn drives the anti-caking mechanism 2 and the wall scraping mechanism 3 to rotate. The rotation of the central shaft 9, controlled by the first motor 5, causes the curved frame 21 to rotate, resulting in the friction plate 23 rubbing against the top of the inner wall of the tank shell 11. This prevents caking on the top of the inner wall, which can easily lead to impurities adhering to the inner wall and contaminating the equipment and materials. On the one hand, the rotation reduces material adsorption during operation, minimizing equipment contamination; on the other hand, after operation, the friction cleans the top of the inner wall. The rotation of the central shaft 9 also drives the wall scraping mechanism 3 to rotate. The connecting column 31 drives the wiping mechanism 35 to rotate. The centrifugal force generated by the rotation causes the square block 33 to slide inside the square shell 32, so that the wiping mechanism 35 rubs against the inner wall of the equipment, thereby scraping the camel milk. This reduces the amount of camel milk that flows onto the inner wall of the equipment during the process of being transported into the equipment. The camel milk that is adhering to the barrel wall is scraped off in time, preventing the camel milk from drying and clumping on the barrel wall, so as to ensure that the barrel wall is always clean and the camel milk can be heated and flow evenly. After the transportation is completed, the inner wall of the equipment can be cleaned by friction to remove residual camel milk and impurities. After the rotation stops, the centrifugation ends. The elastic structure of the first spring 34 causes the square block 33 to move inward to the inside of the square shell 32, so that the equipment returns to its original state.
[0044] After the internal cleaning of the equipment is completed, the drying mechanism 4 dries the inside of the equipment to reduce moisture inside the equipment, prevent water from remaining inside the equipment, and prevent the growth of microorganisms inside the equipment. If the residual liquid is acidic or alkaline, it may corrode the inner wall of the equipment. Long-term contact with corrosive liquid will gradually erode the metal material of the inner wall of the equipment, resulting in thinner wall thickness, reduced strength, and shortened service life of the equipment.
[0045] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. A camel milk concentration device for preventing clumping on the upper layer, characterized in that, The tank includes a tank body (1), a first motor (5) is fixedly connected to the top of the tank body (1), a central rotating shaft (9) is rotatably connected to the top of the inner wall of the tank body (1), an anti-caking mechanism (2) is fixedly connected to the side of the central rotating shaft (9) close to the first motor (5), a wall scraping mechanism (3) is fixedly connected to the side of the central rotating shaft (9) away from the anti-caking mechanism (2), a support frame (7) is fixedly connected to the bottom side of the tank body (1), a second motor (6) is fixedly connected to the middle of the bottom of the tank body (1), a drying mechanism (4) is fixedly connected to the upper side of the tank body (1), and an air pipe (8) is fixedly connected to one side of the tank body (1). The tank mechanism (1) includes a tank shell (11), an input mechanism (19) is fixedly connected to the upper side of the tank shell (11), a heater (15) is fixedly connected to the lower side of the tank shell (11), a connecting shaft (12) is rotatably connected to the bottom of the inner wall of the tank shell (11), the connecting shaft (12) is driven to rotate by the second motor (6), a connecting end (13) is fixedly connected to the outer side of the connecting shaft (12), a rotating paddle (14) is rotatably connected to the outer side of the connecting end (13), and a discharge valve (18) is fixedly connected to the bottom of the tank shell (11) near the second motor (6). The scraping mechanism (3) includes a connecting column (31), a square shell (32) is fixedly connected to the outside of the connecting column (31), a square block (33) is slidably connected to the inside of the square shell (32), a first spring (34) is sleeved on the outside of the square block (33), and a wiping mechanism (35) is fixedly connected to the side of the square block (33) away from the connecting column (31). The square block (33) slides inside the square shell (32) by the centrifugal force generated by rotation. The wiping mechanism (35) includes an elliptical frame (351), a receiving housing (352) is fixedly connected to the inner wall of the elliptical frame (351) near the square block (33), a second spring (353) is provided on the inner side of the receiving housing (352), a sliding block (354) is slidably connected to the inner wall of the receiving housing (352), a silicone block (355) is fixedly connected to the outer side of the elliptical frame (351) away from the square block (33), and a square cutout (356) is provided on the outer side of the silicone block (355). The anti-caking mechanism (2) includes an annular block (24), a curved frame (21) is fixedly connected to the outer side of the annular block (24), a connecting block (22) is fixedly connected to the outer side of the curved frame (21), a friction plate (23) is fixedly connected to one side of the connecting block (22), and a friction mechanism (25) is fixedly connected to the curved side of the curved frame (21). The friction mechanism (25) includes a cylindrical housing (251), a spring strip (252) is provided on the inner side of the cylindrical housing (251), a friction support rod (253) is slidably connected to the inner wall of the cylindrical housing (251), and a curved friction block (254) is fixedly connected to the outer side of the friction support rod (253) away from the cylindrical housing (251). A block surface cutout (255) is opened on the outer side of the curved friction block (254).
2. The camel milk concentration device for preventing caking on the upper layer according to claim 1, characterized in that: Connecting brackets (16) are fixedly connected to both sides of the outside of the connecting shaft (12), and curved blocks (17) are fixedly connected to the side of the connecting brackets (16) away from the connecting shaft (12).
3. The camel milk concentration device for preventing caking on the upper layer according to claim 1, characterized in that: The input mechanism (19) includes a pipe shell (191), a sliding groove (192) is provided on the inner side of the pipe shell (191), a ring frame (193) is slidably connected to the inner side of the sliding groove (192), and a spiral plate (194) is fixedly connected between the opposite surfaces of the ring frame (193).
4. The camel milk concentration device for preventing caking on the upper layer according to claim 1, characterized in that: The drying mechanism (4) includes a box (41), a dryer (42) is fixedly connected to the top of the box (41), an output pipe (43) is fixedly connected to the bottom of the box (41), a ring-shaped shell (44) is fixedly connected to the side of the output pipe (43) away from the box (41), a cleaning mechanism (46) is fixedly connected to the inner wall of the ring-shaped shell (44), and a baffle plate (45) is fixedly connected to the side of the inner wall of the ring-shaped shell (44) near the outer shell (11) of the tank.
5. The camel milk concentration device for preventing upper layer clumping according to claim 4, characterized in that: The cleaning mechanism (46) includes a fixed frame (461), a connecting rod (462) is fixedly connected to one side of the fixed frame (461), a rotating block (463) is rotatably connected to the outside of the connecting rod (462), a cleaning frame (464) is fixedly connected to the outside of the rotating block (463), a blade (465) is fixedly connected to the inside of the cleaning frame (464), a receiving frame (466) is fixedly connected to the outside of the cleaning frame (464) away from the rotating block (463), and a friction column (467) is rotatably connected to the outside of the receiving frame (466).
Citation Information
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